Egger Dominik, Spitz Sarah, Fischer Monica, Handschuh Stephan, Glösmann Martin, Friemert Benedikt, Egerbacher Monika, Kasper Cornelia
Department of Biotechnology, University of Natural Resources and Life Sciences, Vienna, Austria.
Cells Tissues Organs. 2017;203(5):316-326. doi: 10.1159/000457792. Epub 2017 Mar 15.
It is crucial but challenging to keep physiologic conditions during the cultivation of 3D cell scaffold constructs for the optimization of 3D cell culture processes. Therefore, we demonstrate the benefits of a recently developed miniaturized perfusion bioreactor together with a specialized incubator system that allows for the cultivation of multiple samples while screening different conditions. Hence, a decellularized bone matrix was tested towards its suitability for 3D osteogenic differentiation under flow perfusion conditions. Subsequently, physiologic shear stress and hydrostatic pressure (HP) conditions were optimized for osteogenic differentiation of human mesenchymal stem cells (MSCs). X-ray computed microtomography and scanning electron microscopy (SEM) revealed a closed cell layer covering the entire matrix. Osteogenic differentiation assessed by alkaline phosphatase activity and SEM was found to be increased in all dynamic conditions. Furthermore, screening of different fluid shear stress (FSS) conditions revealed 1.5 mL/min (equivalent to ∼10 mPa shear stress) to be optimal. However, no distinct effect of HP compared to flow perfusion without HP on osteogenic differentiation was observed. Notably, throughout all experiments, cells cultivated under FSS or HP conditions displayed increased osteogenic differentiation, which underlines the importance of physiologic conditions. In conclusion, the bioreactor system was used for biomaterial testing and to develop and optimize a 3D cell culture process for the osteogenic differentiation of MSCs. Due to its versatility and higher throughput efficiency, we hypothesize that this bioreactor/incubator system will advance the development and optimization of a variety of 3D cell culture processes.
在三维细胞支架构建体培养过程中保持生理条件对于优化三维细胞培养过程至关重要,但也具有挑战性。因此,我们展示了一种最近开发的小型化灌注生物反应器以及一种专门的培养箱系统的优势,该系统允许在筛选不同条件的同时培养多个样品。因此,对脱细胞骨基质在流动灌注条件下进行三维成骨分化的适用性进行了测试。随后,针对人间充质干细胞(MSCs)的成骨分化优化了生理剪切应力和静水压力(HP)条件。X射线计算机断层扫描和扫描电子显微镜(SEM)显示整个基质上覆盖着一层封闭的细胞层。通过碱性磷酸酶活性和SEM评估发现,在所有动态条件下成骨分化均增加。此外,对不同流体剪切应力(FSS)条件的筛选显示,1.5 mL/min(相当于约10 mPa剪切应力)为最佳条件。然而,与无HP的流动灌注相比,未观察到HP对成骨分化有明显影响。值得注意的是,在所有实验中,在FSS或HP条件下培养的细胞显示出成骨分化增加,这突出了生理条件的重要性。总之,该生物反应器系统用于生物材料测试,并开发和优化用于MSCs成骨分化的三维细胞培养过程。由于其多功能性和更高的通量效率,我们假设这种生物反应器/培养箱系统将推动各种三维细胞培养过程的开发和优化。